Nilasha Maiti, Pramod Bhatt, Manoj K Sharma, Sher Singh Meena, Mayuresh D Mukadam, Katsuya Inoue
Ligand field induced electronic structure modulation provides an effective pathway to tune the electrochemical functionality of Prussian Blue Analogue molecular magnets. Partial substitution of Fe by Co2+ in Fe-C≡N-Fe framework forms cobalt iron hexacyanoferrate (KCoFeHCF), significantly modifying the local ligand field and metal-cyanide bonding through strong Co/Fe-N≡C-Fe linkages. It alters d-orbital splitting and spin configuration, producing an additional low-spin Fe3+ state alongside high-spin Fe3+ and low-spin Fe2+ states. Enhanced charge redistribution and electron delocalization across the framework stabilizes these states and increase the crystal field stabilization energy to -5.2 Δ0 + 6P, compared with -2.4 Δ0 + 3P for KFeHCF and -2.8 Δ0 + 4P for KCoHCF, improving structural stability. Density functional theory confirms preferential electron redistribution toward low-spin Fe sites. Importantly, ligand field modulation activates the otherwise inaccessible Co2+/Co3+ redox couple by lowering its operating potential from ∼1.92 to ∼0.6 V, enabling a triple-redox mechanism involving Co-N, Fe-N, and Fe-C environments. KCoFeHCF delivers ∼148 mAh/g at 2.5 A/g with 88% capacity retention after 180 cycles. Full cell achieves ∼58 Wh/ kg at ∼1505 W/kg and retains ∼60% capacity after 5000 cycles, demonstrating excellent electrochemical durability and promising potential for aqueous potassium-ion batteries.